{"id":"658704c3-1579-4d6a-a37f-79f5533e57e0","slug":"intraoperative-indocyanine-green-videoangiography-to-guide-decision-making-regarding-need-for-vessel-bypass-a-case-report-and-technical-note","title":"Intraoperative indocyanine green videoangiography to guide decision making regarding need for vessel bypass: A case report and technical note","authors":["Michael Avery","Somar Chehab","John H. Wong","Alim P. Mitha"],"abstract":"Background: Indocyanine green (ICG) videoangiography is an intraoperative technique recently used in vascular neurosurgery to assess the presence or absence of blood flow during critical times of a procedure. These include, but are not limited to, detecting whether daughter branches or perforators are patent after placing a vascular clip or determining whether an aneurysm has been completely isolated from the cerebral circulation after clipping. We present a case of a less-commonly reported application of ICG videoangiography involving the selection of a vessel to act as the bypass recipient once the need is identified during the surgical treatment of a complex intracranial aneurysm. Case Description: A 51-year-old male presented with a ruptured dissecting superior cerebellar artery (SCA) aneurysm that had two branches arising from the dome. Due to the difficult morphology of this aneurysm, a superficial temporal artery to SCA bypass was planned. We used ICG videoangiography to identify the branch that had insufficient retrograde flow via collateral circulation, to which the bypass was performed, followed by the isolation of the aneurysm from the cerebral circulation using permanent surgical clips. Conclusion: Our case represents a possible use of ICG videoangiography during the operative treatment of a difficult aneurysm. Our patient suffered no infarcts postoperatively. In the correct clinical context, this method represents a possible treatment option for complex aneurysms requiring a bypass. Intraoperative angiography is a useful tool in cerebrovascular neurosurgery. One commonly used method is indocyanine green (ICG) videoangiography. ICG is a cyanine dye that has a peak spectral absorption of between 780 and 805 nm, with an emission spectrum peaking between 820 and 835 nm.[ 10 ] Modern intraoperative microscopes are easily outfitted with a near-infrared emitter for dye excitation and a high-sensitivity detector specific for ICG videoangiography. Injecting ICG into the venous system will allow the surgeon to identify the presence or absence of blood flow in an area of interest. Applications are numerous and include identification of recipient vessels for bypass grafts, verification of bypass patency, the degree of an aneurysm or arteriovenous malformation obliteration, identifying important perforating vessels, among others.[ 1 ] Our case describes a novel use of ICG videoangiography in aneurysm bypass surgery that incorporated the intraoperative findings in our decision-making process. A healthy 51-year-old male presented to our institution with a headache, complete left oculomotor nerve palsy and increasing lethargy secondary to a ruptured 10 mm left proximal superior cerebellar artery (SCA) dissecting aneurysm with the two branching vessels emerging from its distal aspect [ Figure 1 ]. A cerebral angiogram was performed to better characterize the aneurysm's morphology [ Figure 2 ]. Nimodipine was prescribed for vasospasm prophylaxis and an external ventricular drain (EVD) was inserted for obstructive hydrocephalus resulting in clinical stabilization. Axial computed tomography head (a and b) showing a hemorrhage in the prepontine and interpeduncular cisterns with mass effect on the brainstem from the left superior cerebellar artery aneurysm, demonstrated on coronal computed tomography angiography (c and d) Anteroposterior view of left internal carotid artery injection digital subtraction angiograph (above), demonstrating left superior cerebellar artery aneurysm and bifurcating branches emerging from the aneurysm dome. Three-dimensional reconstruction of aneurysm complex (below) On post-SAH day 10, the patient was taken to the operating room for definitive management of the aneurysm. A left-sided orbitozygomatic craniotomy was performed in the usual fashion with care to expose and isolate 12 cm of the superficial temporal artery (STA), which was identified transcutaneously with a handheld Doppler. The STA was protected with a papaverine-soaked gauze. Using a subfrontal approach and with microscopic magnification, the left opticocarotid complex was identified. The left posterior communicating artery was then followed to the ipsilateral posterior cerebral artery. The proximal SCA was then identified and dissected for later clip placement. We then followed a left subtemporal corridor to identify the anuerysm and two branches of the SCA emerging from its distal aspect. The trochlear nerve was divided to improve exposure; since the patient had presented with complete oculomotor nerve palsy with associated ptosis, it was felt that dividing the fourth nerve would result in no significant additional deficit. As expected, two branches of the SCA were found to be arising from the aneurysm, and temporary clips were placed proximally on each branch. Using intraoperative ICG videoangiography, we found that the smaller of the two SCA branches had retrograde flow while the larger did not, indicating a lack of collateral flow into the larger SCA branch [ Figure 3 ]. Therefore, we elected to perform a left STA-SCA bypass to the larger branch. Intraoperative microscopic view of aneurysm complex viewed during left subtemporal approach (right = anterior, up = inferior) (above). Identical intraoperative view during indocyanine green videoangeography after applying temporary clips proximally on the branches of the superior cerebellar artery (below). Smaller branch (*) is seen fluorescing, while larger branch (**) and aneurysm dome (#) are not seen. The location of these nonfluorescing structures is outlined in white To perform the bypass, a temporary clip was placed on the proximal aspect of the exposed left STA, and the vessel was longitudinally transected distally. After clearing the vessel of its adventitia, the STA was laid down along the floor of the middle cranial fossa to the aneurysm site. Temporary clips were positioned on the proximal and distal aspects of the larger SCA branch. The bypass was performed end-to-side on the SCA branch between the clips with 10-0 nylon sutures. The three temporary clips were removed, establishing flow through the bypass. Finally, permanent clips were applied to the SCA proximal to the aneurysm, as well as on the proximal aspects of the two SCA branches as they emerged from the aneurysm, thus isolating the aneurysm from the cerebral circulation. The bone was replaced, and the craniotomy was closed in the usual fashion. A postoperative CTA demonstrated patency of the bypass and no residual filling of the excluded dissecting aneurysm [ Figure 4 ]. The EVD was removed on postoperative day 4 and the patient recovered well with no treatment-related complications. At follow-up, the patient demonstrated persistent left oculomotor and trochlear nerve palsies as expected but recovered well otherwise. Postoperative axial computed tomography angiogram demonstrating complete clip occlusion of the left superior cerebellar artery aneurysm. A single clip was placed proximal to the aneurysm and one clip was placed proximally on each of the distal branches (left). The superficial temporal artery (arrow) is patent and feeding into the patent larger superior cerebellar artery (arrowhead) branch (right). No cerebellar infarcts were noted on postoperative imaging","thumbnailUrl":"https://sni-digital-videos.s3.amazonaws.com/articles/658704c3-1579-4d6a-a37f-79f5533e57e0/featured/hero-1782420947754.png","publishDate":"2016-01-07T00:00:00.000Z","doi":"10.4103/2152-7806.173567","categories":["Neurovascular","Case Report"],"fullTextUrl":"http://surgicalneurologyint.com/wp-content/uploads/2016/01/6424/SNI-7-36.pdf"}